A new circulating dehumidifying drying system
Patent Information
- Application Number
- CN202522183079.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-15
- Publication Date
- 2026-09-18
- Estimated Expiration
- 2035-10-15
AI Technical Summary
[0003]而现有的除湿干燥方案,一般是通过高能耗加热即高温干燥(80℃以上高温)
[0019]This application provides a novel circulating dehumidification and drying system, comprising: a fan module, a heat exchange module, and a dehumidifier body. The fan module is disposed inside the dehumidifier body and provides a first ambient temperature air for dehumidification of the items to be dehumidified. The fan module is connected to the heat exchange module. After the first ambient temperature air passes through the items to be dehumidified, it carries away water droplets on the items and is cooled by the heat exchange module, eventually turning back into liquid upon cooling. The cooled first ambient temperature air becomes a first cooling air. The fan module is also connected to the heat exchange module, which heats the first cooling air, turning it into a second ambient temperature air. The second ambient temperature air is then blown out by the fan module and used again for dehumidification. By dehumidifying and drying items under low energy consumption, both environmental protection and energy saving are achieved, and damage to the dehumidified items during the dehumidification and drying process is reduced.
Smart Images

Figure CN224771979U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of dehumidification and drying technology, and in particular to a novel circulating dehumidification and drying system. Background Technology
[0002] Precision cleaning is a critical process whose core objective is to remove micron- and submicron-sized contaminants to achieve extremely high cleanliness standards. It is far more complex than ordinary wiping and is primarily used in areas where even minute contaminants can lead to functional failure, performance degradation, or significant safety hazards. A high-quality cleaning process typically involves a combination of ultrasonic cleaning, ultrasonic rinsing, and final drying.
[0003] Existing dehumidification and drying solutions typically rely on high-energy heating, i.e., high-temperature drying (above 80°C). Placing items to be dehumidified in dehumidification equipment for extended periods may shorten the lifespan of the items, especially electronic products, or even cause physical damage.
[0004] Therefore, finding a way to dehumidify and dry items with low energy consumption can reduce damage to the items during the dehumidification and drying process. On the other hand, low-energy dehumidification and drying is also more environmentally friendly and suitable for drying systems of various high-precision and high-requirement items. Utility Model Content
[0005] To address the aforementioned issues, this utility model proposes a novel circulating dehumidification and drying system. By dehumidifying and drying items under low energy consumption conditions, it achieves both environmental protection and energy saving, while also reducing damage to the items being dehumidified during the dehumidification and drying process.
[0006] This utility model provides a novel circulating dehumidification and drying system, comprising: a fan module, a heat exchange module, and a dehumidifier body; the fan module is disposed inside the dehumidifier body and provides the first ambient temperature air for dehumidification of the items to be dehumidified;
[0007] The fan module is connected to the heat exchange module located inside the dehumidifier body. After the first ambient temperature air passes through the item to be dehumidified, it carries away the water droplets on the item and cools down after passing through the heat exchange module. The water vapor evaporated from the item to be dehumidified turns into liquid when it is cooled down. The first ambient temperature air becomes the first cooling air after cooling down.
[0008] The fan module is connected to the heat exchange module located inside the dehumidifier body. The heat exchange module is used to heat the first cooled air after it has been cooled down, thereby forming a second normal temperature air. The second normal temperature air is then blown out by the fan module and used for dehumidification again.
[0009] Furthermore, the heat exchange module includes a fixedly connected condenser structure and a heat exchange structure.
[0010] Furthermore, the dehumidifier body also includes a compressor module; the compressor module is connected to the condenser structure and is used to cool the condenser structure and collect heat energy; the cold-heat exchange structure is connected to the compressor module and is used to absorb the heat conducted from the compressor module.
[0011] Furthermore, the condenser structure is connected to the fan module to cool the first ambient temperature air into a first cooling air, and to collect the liquid formed by the water vapor evaporating from the item to be dehumidified after it is cooled and converted.
[0012] Furthermore, the dehumidifier body also includes a drying trough; the drying trough is used to place the items to be dehumidified.
[0013] Furthermore, the drying trough is connected to the fan module and is used to receive the first ambient temperature air provided by the fan module.
[0014] Furthermore, the drying trough also includes an automatic door structure; the automatic door structure includes a hot air automatic door and a track that are slidably connected; the hot air automatic door can retract / retract via the track.
[0015] Furthermore, the drying trough also includes a first drying channel and a second drying channel arranged on the left and right sides; the first drying channel and the second drying channel are located inside the drying trough and are respectively provided with a first ventilation net and a second ventilation net; the first ambient temperature air passes through the first ventilation net and the second ventilation net to dehumidify the items to be dehumidified.
[0016] Furthermore, a third ventilation net is provided at the bottom of the drying trough to send out the first cooling air.
[0017] Furthermore, the dehumidifier body also includes a control module, which is used to control the fan module, heat exchange module, air drying trough and compressor module respectively.
[0018] This utility model has the following beneficial effects:
[0019] This application provides a novel circulating dehumidification and drying system, comprising: a fan module, a heat exchange module, and a dehumidifier body. The fan module is disposed inside the dehumidifier body and provides a first ambient temperature air for dehumidification of the items to be dehumidified. The fan module is connected to the heat exchange module. After the first ambient temperature air passes through the items to be dehumidified, it carries away water droplets on the items and is cooled by the heat exchange module, eventually turning back into liquid upon cooling. The cooled first ambient temperature air becomes a first cooling air. The fan module is also connected to the heat exchange module, which heats the first cooling air, turning it into a second ambient temperature air. The second ambient temperature air is then blown out by the fan module and used again for dehumidification. By dehumidifying and drying items under low energy consumption, both environmental protection and energy saving are achieved, and damage to the dehumidified items during the dehumidification and drying process is reduced. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the structure of the novel circulating dehumidification and drying system provided in the embodiment of this utility model;
[0021] Figure 2 This is a schematic diagram of the structure of the novel circulating dehumidification and drying system provided in the embodiment of this utility model;
[0022] Figure 3 This is a schematic diagram of the structure of the novel circulating dehumidification and drying system provided in the embodiment of this utility model;
[0023] Figure 4 This is a schematic diagram of the thermal energy circulation of the novel circulating dehumidification and drying system provided in this embodiment of the utility model;
[0024] Figure 5 This is a schematic diagram of the control system structure of the novel circulating dehumidification and drying system provided in an embodiment of the present invention.
[0025] Attached reference numerals: 100 Drying trough, 110 Automatic hot air door, 120 Track, 1301 First ventilation screen, 1401 Second ventilation screen, 1501 Third ventilation screen, 200 Heat exchanger, 300 Fan, 310 Fan inlet, 320 Fan outlet, 400 Compressor, 500 Base, 600 Condenser, 700 Heat exchanger, 800 Control system. Detailed Implementation
[0026] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present utility model.
[0027] In the description of this utility model, it should be understood that the terms "opening", "upper", "middle", "length", "inner", etc., which indicate orientation or positional relationship, are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the components or elements referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.
[0028] To keep the following description of the embodiments of this utility model clear and concise, detailed descriptions of known functions and known components are omitted.
[0029] Please refer to Figure 1 2, 3, This utility model document proposes a novel circulating dehumidification and drying system, the specific scheme of which is as follows:
[0030] A novel circulating dehumidification and drying system includes: a fan 300, a heat exchanger 200, and a dehumidifier body. The fan 300 is located inside the dehumidifier body and provides the first ambient temperature air for dehumidification of the items to be dehumidified.
[0031] The fan 300 is connected to the heat exchanger 200 installed inside the dehumidifier body. After the first ambient temperature air passes through the item to be dehumidified, it carries away the water droplets on the item and cools down after passing through the heat exchanger 200. The water vapor evaporated from the item to be dehumidified turns into liquid when it is cooled down. The first ambient temperature air becomes the first cooling air after cooling down.
[0032] The fan 300 is connected to the heat exchanger 200 located inside the dehumidifier body. The heat exchanger 200 heats the cooled first air to form a second ambient temperature air. The second ambient temperature air is then blown out by the fan 300 and used for dehumidification again.
[0033] In one specific embodiment, in this novel circulating dehumidification and drying system, the fan 300 provides a first ambient temperature air for dehumidification. This first ambient temperature air evaporates water droplets on the item to be dehumidified into water vapor through heat transfer, at which point the first ambient temperature air has cooled down, becoming a first cooled air. The water vapor then passes through the heat exchanger 200 and becomes water droplets, with the heat collected by the heat exchanger 200.
[0034] Then, the fan 300 is connected to the heat exchanger 200, which heats the cooled first air to form a second ambient temperature air. The second ambient temperature air is then blown out by the fan 300 for the next dehumidification cycle.
[0035] It should be noted that because the entire dehumidification system is located inside a sealed space, the humidity in the sealed space will gradually decrease through the aforementioned cyclical dehumidification process until the items are completely dry. The dehumidification and drying time for the same item is approximately 10 minutes, while the high-temperature drying time is 30 minutes.
[0036] To clarify, the dehumidification process for items requiring dehumidification using room temperature air is repeated multiple times.
[0037] It should also be noted that the temperature of the ambient air used in the dehumidification process is between 30-40℃. Therefore, the novel circulating dehumidification and drying system provided in this application dehumidifies and dries the items to be dehumidified using ambient air, without the need for high temperatures, and the dehumidification and drying process is shorter, thus exhibiting significant energy-saving and environmental protection effects; in addition, dehumidification and drying at ambient temperature causes less damage to the items to be dehumidified and is safer.
[0038] like Figures 1-4 As shown, the heat exchanger 200 includes a condenser 600 and a heat exchanger 700 that are fixedly connected.
[0039] The dehumidifier also includes a compressor 400, which is connected to a condenser 600. The compressor 400 is used to cool the condenser 600 and collect heat energy.
[0040] In one specific embodiment, the compressor 400 is connected to the condenser 600. After the condenser 600 absorbs heat from the water vapor, the water vapor cools down and turns into water droplets. The heat absorbed by the condenser 600 is then transferred to the compressor 400.
[0041] like Figure 4 As shown, the heat exchanger 700 is connected to the compressor 400. The heat exchanger 700 is used to absorb the heat conducted from the compressor 400.
[0042] In one embodiment, a heat exchanger 700 is connected to a compressor 400. The heat exchanger 700 absorbs heat conducted from the compressor 400, some of which is transferred from the condenser 600.
[0043] In one embodiment, in compressor 400, the gas is operated by a motor, which in turn causes the gas pressure inside the compressor to increase and the heat to increase.
[0044] like Figure 4As shown, the condenser 600 is connected to the fan 300 and is used to cool the first ambient temperature air into the first cooling air, and to collect the liquid after the water vapor evaporated from the item to be dehumidified is cooled and converted.
[0045] like Figure 1 , Figure 2 and Figure 3 As shown, the dehumidifier body also includes a drying trough 100, which is used to place items to be dehumidified. The drying trough 100 is connected to a fan 300 and is used to receive the first ambient temperature air provided by the fan 300. The drying trough 100 also includes a first drying channel and a second drying channel arranged on the left and right sides. The first drying channel and the second drying channel are located inside the drying trough 100 and are respectively provided with a first ventilation net 1301 and a second ventilation net 1401. The first ambient temperature air passes through the first ventilation net 1301 and the second ventilation net 1401 to dehumidify the items to be dehumidified. A third ventilation net 1501 is also provided at the bottom of the drying trough 100 for sending out the first cooling air.
[0046] In one embodiment, the drying trough 100 is used to place items to be dehumidified. A fan 300 blows first ambient temperature air through its outlet 320, dehumidifying the items placed inside the drying trough 100. This removes water droplets from the items and converts them into water vapor. Simultaneously, the first ambient temperature air becomes first cooling air, and the water vapor condenses into water droplets after passing through the condenser 600. The first ambient temperature air passes through a first drying channel and a second drying channel, respectively, through a first ventilation mesh 1301 and a second ventilation mesh 1401, before reaching the items placed inside the drying trough 100 for further dehumidification. The cooled first cooling air is then blown out through a third ventilation mesh 1501.
[0047] It should also be noted that after the first cooling air is blown out through the third ventilation mesh 1501, it is heated by the heat exchanger 700 and becomes the second normal temperature air. Then, it returns to the fan 300 through the fan inlet 310. The fan 300 then blows out the second normal temperature air to continue dehumidification.
[0048] like Figure 1 As shown, the drying trough 100 also includes an automatic door structure, which includes a hot air automatic door 110 and a track 120 that are slidably connected. The hot air automatic door 110 can retract or expand via the track 120.
[0049] In one embodiment, because the dehumidification and drying system is enclosed, the automatic door structure of the drying trough 100 allows items to be dehumidified to be placed into the internal cavity of the drying trough 100 manually or by a robotic arm when the automatic door structure is opened. The automatic door structure of the drying trough 100 includes a hot air automatic door 110 and a track 120, and the hot air automatic door 110 can be opened or closed along the track 120 by control.
[0050] like Figure 3 As shown, the dehumidifier body also includes a control system 800, which is used to control the fan 300, heat exchanger 700, condenser 600, compressor 400 and drying trough 100.
[0051] One embodiment of the dehumidifier system is provided, in which the fan 300, the drying trough 100, the condenser 600, the compressor 400, and the heat exchanger 700 work together to continuously circulate the dehumidifying ambient temperature air to remove water droplets from the items to be dehumidified. After multiple dehumidification cycles, the dehumidification and drying of the items to be dehumidified is completed.
[0052] In another embodiment, the fan 300, the drying trough 100, the condenser 600, the compressor 400, and the heat exchanger 700 are each equipped with a separate control subunit for their respective operation control.
[0053] In another embodiment, the control system 800 and the aforementioned control subunit are both signal-connected to an artificial intelligence device to implement detection and adjustment control commands in order to maximize energy savings.
[0054] The accompanying drawings in this application are for illustrative purposes only. The dimensions and shapes of the components shown are not actual limitations but are merely schematic representations. In actual implementation, the components can be reasonably configured and adjusted according to specific needs and actual conditions.
[0055] The above are merely specific embodiments of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. In the absence of conflict, the embodiments and features in the embodiments of this utility model can be combined with each other. Therefore, the protection scope of this utility model should be determined by the scope of the claims.
Claims
1. A novel cyclic dehumidifying drying system, characterized by, include: Fan module, heat exchange module Blocks and the dehumidifier body; The fan module is located inside the dehumidifier body and provides the first ambient temperature air for dehumidification of the items to be dehumidified; The fan module is connected to the heat exchange module located inside the dehumidifier body. After the first ambient temperature air passes through the item to be dehumidified, it carries away the water droplets on the item and cools down after passing through the heat exchange module. The water vapor evaporated from the item to be dehumidified turns into liquid when it is cooled down. The first ambient temperature air becomes the first cooling air after cooling down. The fan module is connected to the heat exchange module located inside the dehumidifier body. The heat exchange module is used to heat the first cooled air after cooling, thereby forming a second normal temperature air. The second ambient temperature air is then blown out by the fan module and used again for dehumidification.
2. The novel cyclic dehumidifying drying system according to claim 1, wherein, The heat exchange The replacement module includes a fixedly connected condenser structure and a cold-heat exchange structure.
3. The novel cyclic dehumidifying drying system according to claim 2, wherein The dehumidifier The main body also includes a compressor module; the compressor module is connected to the condenser structure and is used to cool the condenser structure and collect heat energy; the cold-heat exchange structure is connected to the compressor module and is used to absorb the heat conducted from the compressor module.
4. The novel cyclic dehumidifying drying system according to claim 3, wherein The condenser The structure is connected to the fan module and is used to cool the first ambient temperature air into a first cooling air, and to collect the liquid after the water vapor evaporated from the item to be dehumidified is cooled and converted.
5. The novel circulating dehumidification and drying system according to claim 3, characterized in that, The dehumidifier The main body also includes a drying trough; the drying trough is used to place the items to be dehumidified.
6. The novel cyclic dehumidifying drying system according to claim 5, wherein The air drying trough It is connected to the fan module and is used to receive the first ambient temperature air provided by the fan module.
7. The novel cyclic dehumidifying drying system according to claim 5, wherein The air drying trough It also includes an automatic door structure; the automatic door structure includes a slidingly connected hot air automatic door and a track; the hot air automatic door can retract / extend via the track.
8. The novel cyclic dehumidifying drying system according to claim 5, wherein, The air drying trough It also includes a first drying channel and a second drying channel arranged on the left and right sides; the first drying channel and the second drying channel are located inside the drying trough and are respectively provided with a first ventilation net and a second ventilation net; the first normal temperature air passes through the first ventilation net and the second ventilation net to dehumidify the items to be dehumidified.
9. The novel cyclic dehumidifying drying system according to claim 7, wherein, The air drying trough A third ventilation mesh is also installed at the bottom to send out the first cooling air.
10. The novel cyclic dehumidifying drying system according to claim 5, wherein, The dehumidifier The main body also includes a control module, which is used to control the fan module, heat exchange module, air drying trough and compressor module respectively.